4.7 Article

ABI transcription factors and PROTEIN L-ISOASPARTYL METHYLTRANSFERASE module mediate seed desiccation tolerance and longevity in Oryza sativa

期刊

DEVELOPMENT
卷 149, 期 11, 页码 -

出版社

COMPANY BIOLOGISTS LTD
DOI: 10.1242/dev.200600

关键词

Oryza sativa; Oryza coarctata; Seed desiccation tolerance; ABI TF; ABA; Protein repairing enzymes (PRE); PIMT; Isoaspartate (isoAsp); Orthodox seeds and recalcitrant seeds

资金

  1. Department of Biotechnology, Ministry of Science and Technology, India [BT/HRD/NBA/39/05/2018-19]
  2. Government of India
  3. National Institute of Plant Genome Research
  4. University Grants Commission, Government of India

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PIMT plays a key role in the desiccation tolerance of orthodox seeds but not in recalcitrant seeds. The reduced PIMT activity and increased isoAsp accumulation in recalcitrant seeds result in desiccation intolerance. PIMT interacts with ABI transcription factors and repairs isoAsp residues.
In contrast to desiccation-tolerant orthodox seeds, recalcitrant seeds are desiccation sensitive and are unable to survive for a prolonged time. Here, our analyses of Oryza species with contrasting seed desiccation tolerance reveals that PROTEIN L-ISOASPARTYL METHYLTRANSFERASE (PIMT), an enzyme that repairs abnormal isoaspartyl (isoAsp) residues in proteins, acts as a key player that governs seed desiccation tolerance to orthodox seeds but is ineffective in recalcitrant seeds. We observe that, unlike the orthodox seed of Oryza sativa, desiccation intolerance of the recalcitrant seeds of Oryza coarctata are linked to reduced PIMT activity and increased isoAsp accumulation due to the lack of coordinated action of ABA and ABI transcription factors to upregulate PIMT during maturation. We show that suppression of PIMT reduces, and its overexpression increases, seed desiccation tolerance and seed longevity in O. sativa. Our analyses further reveal that the ABI transcription factors undergo isoAsp formation that affect their functional competence; however, PIMT interacts with and repairs isoAsp residues and facilitates their functions. Our results thus illustrate a new insight into the mechanisms of acquisition of seed desiccation tolerance and longevity by ABI transcription factors and the PIMT module.

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